9

Im trying to use this method: class_addMethod() which in Obj-c is used like this:

class_addMethod([self class], @selector(eventHandler), imp_implementationWithBlock(handler), "v@:");

And Im using it like this in Swift:

class_addMethod(NSClassFromString("UIBarButtonItem"), "handler", imp_implementationWithBlock(handler), "v@:")

It is an extension for UIBarButtonItem as you might have figured out.

imp_implementationWithBlock takes a parameter of type AnyObject!

How can I cast ()->() into AnyObject ?

I've tried to cast it like this: handler as AnyObject but it gives me an error saying: ()->() does not conform to protocol 'AnyObject'

  • Did you try using reinterpretCast()? – Romain Jan 29 '15 at 10:38
9

How can I cast ()->() into AnyObject ?

Warning: This answer includes undocumented and unsafe feature in Swift. I doubt this passes AppStore review.

let f: ()->() = {
    println("test")
}

let imp = imp_implementationWithBlock(
    unsafeBitCast(
        f as @objc_block ()->(),
        AnyObject.self
    )
)
  • What is 'f' ? Is it the closure? – Arbitur Jan 29 '15 at 10:51
  • Oops, edited the answer. – rintaro Jan 29 '15 at 10:51
  • So why has Apple a func imp_implementationWithBlock(_ block: AnyObject!) -> IMP in the lib reference if you need that code you posted? Bug? – Thomas Kilian Jan 29 '15 at 10:57
  • Obj-C code can passes Blocks to Swift AnyObject type parameter. – rintaro Jan 29 '15 at 11:06
  • 1
    Should use @convention instead of @objc_block – onmyway133 Jan 16 '16 at 9:46
8

You could write a wrapper, then pass it to the function

class ObjectWrapper<T> {
    let value :T
    init(value:T) {
       self.value = value
    }
}

let action = ObjectWarpper(value: {()->() in    
    // something
})
5

In Swift 2, you should use @convention instead of @objc_block. See Type Attribute

func swizzle(type: AnyClass, original: Selector, methodType: MethodType, block: () -> Void) {
    let originalMethod = method(type, original: original, methodType: methodType)

    let castedBlock: AnyObject = unsafeBitCast(block as @convention(block) () -> Void, AnyObject.self)

    let swizzledImplementation = imp_implementationWithBlock(castedBlock)
    // More code goes here
}
4

You can't. You can only cast it to Any.

  • AnyObject can represent an instance of any class type.
  • Any can represent an instance of any type at all, including function types.

Apple Inc. „The Swift Programming Language.“ iBooks. https://itun.es/de/jEUH0.l

  • But is there another way of doing this in any way? – Arbitur Jan 29 '15 at 10:41
  • Have you tried to pass Selector("handler")? Can you show the signature of imp_implementationWithBlock ? – Thomas Kilian Jan 29 '15 at 10:42
  • The error isnt the selector part, its the imp_implementationWithBlock() that is causing confuson – Arbitur Jan 29 '15 at 10:45
  • imp_implementationWithBlock(block: AnyObject!) takes only an AnyObject as parameter and returns an IMP – Arbitur Jan 29 '15 at 10:47
  • Its found in Objective-C Runtime references – Arbitur Jan 29 '15 at 10:47
2

This has worked for me:

let myBlock: @objc_block () -> Void = { 
}
var mf : AnyObject = unsafeBitCast(myBlock, AnyObject.self)
0

Use Any object (The protocol to which all types implicitly conform)

 let aBlock: (view: View) -> Void = { view in /**/ }

 let block:Any? = aBlock
0

In Swift 4.x (I think works in 3.x too), simply declaring the closure as @convention(block) should be enough to address compatibility thing:

// define the new implementation
let handler: @convention(block) (UIBarButtonItem) -> Void = { _ in }

// inject it into the class
class_addMethod(NSClassFromString("UIBarButtonItem"), sel_registerName("handler"), imp_implementationWithBlock(handler), "v@:")

Though, starting with Swift 3, AnyObject was converted to Any if the reference comes from Objective-C, so the code will compile even without the @convention(block) part, however it will crash at runtime as the compiler will not convert the Swift closure to an Objective-C block.

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.